DocumentCode :
2137589
Title :
Computer model study of magnitude and phase relations of arterial pressure in response to respiratory fluctuations
Author :
Choi, Younhee ; Ko, Seok-Bum ; Shi, Yang ; Basran, Jenny ; Bello-Haas, Vanina Dal ; Dinh, Anh
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Saskatchewan, Saskatoon, SK
fYear :
2008
fDate :
4-7 May 2008
Abstract :
A comprehensive computer model has been developed and used for studying hemodynamic waveforms and various cardiopulmonary mechanisms. Inspiratory fall of systolic arterial pressure (IFSBP) is used as an index to assess the respiratory influences on non-linear dynamics of heart rate variability. Two approaches for baroreflex regulation were tested, including a simple 1st-order relationship between R-R interval (RRI) and systolic blood pressure (SBP) and the autoregressive moving average (ARMA) model. Experimental data were obtained retrospectively from 22 patients with chronic airway obstruction before and during breathing through an external resistance. Magnitude and phase relations between arterial pressure and pleural pressure were evaluated. The computer model provided good fits to arterial pressure waveforms: correlation coefficients (r) ranging from 0.71 to 0.96 (meanplusmnSD: 0.87plusmn0.06) with a simple 1st-order model. It was observed that the ARMA model did not further improve the goodness of fit. Higher correlation coefficient between IFSBP and respiratory variation in the elderly subjects supported that aging impairs baroreflex mechanism. In terms of phase relations, no dominant parameter was found.
Keywords :
biology computing; cardiology; haemodynamics; pneumodynamics; autoregressive moving average model; baroreflex regulation; breathing; cardiopulmonary mechanisms; heart rate variability; hemodynamic waveforms; respiratory fluctuations; systolic arterial pressure; Autoregressive processes; Baroreflex; Blood pressure; Cardiology; Fluctuations; Heart rate variability; Hemodynamics; Rail to rail inputs; Senior citizens; Testing; baroreflex regulation; cardiopulmonary system; computational model; inspiratory fall of systolic blood pressure (IFSBP); pulsus paradoxus;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Electrical and Computer Engineering, 2008. CCECE 2008. Canadian Conference on
Conference_Location :
Niagara Falls, ON
ISSN :
0840-7789
Print_ISBN :
978-1-4244-1642-4
Electronic_ISBN :
0840-7789
Type :
conf
DOI :
10.1109/CCECE.2008.4564863
Filename :
4564863
Link To Document :
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